EP2224191B1 - Klimaanlage und Steuerverfahren dafür - Google Patents

Klimaanlage und Steuerverfahren dafür Download PDF

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Publication number
EP2224191B1
EP2224191B1 EP10001897.7A EP10001897A EP2224191B1 EP 2224191 B1 EP2224191 B1 EP 2224191B1 EP 10001897 A EP10001897 A EP 10001897A EP 2224191 B1 EP2224191 B1 EP 2224191B1
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EP
European Patent Office
Prior art keywords
refrigerant
compressor
heat exchanger
pressure
temperature
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Not-in-force
Application number
EP10001897.7A
Other languages
English (en)
French (fr)
Other versions
EP2224191A2 (de
EP2224191A3 (de
Inventor
Ho Jong Jeong
Chi Woo Song
Baik Young Chung
Sai Kee Oh
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
LG Electronics Inc
Original Assignee
LG Electronics Inc
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Filing date
Publication date
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Publication of EP2224191A2 publication Critical patent/EP2224191A2/de
Publication of EP2224191A3 publication Critical patent/EP2224191A3/de
Application granted granted Critical
Publication of EP2224191B1 publication Critical patent/EP2224191B1/de
Not-in-force legal-status Critical Current
Anticipated expiration legal-status Critical

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Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25BREFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
    • F25B13/00Compression machines, plants or systems, with reversible cycle
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25BREFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
    • F25B40/00Subcoolers, desuperheaters or superheaters
    • F25B40/02Subcoolers
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25BREFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
    • F25B41/00Fluid-circulation arrangements
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25BREFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
    • F25B43/00Arrangements for separating or purifying gases or liquids; Arrangements for vaporising the residuum of liquid refrigerant, e.g. by heat
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25BREFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
    • F25B1/00Compression machines, plants or systems with non-reversible cycle
    • F25B1/10Compression machines, plants or systems with non-reversible cycle with multi-stage compression
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25BREFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
    • F25B2313/00Compression machines, plants or systems with reversible cycle not otherwise provided for
    • F25B2313/027Compression machines, plants or systems with reversible cycle not otherwise provided for characterised by the reversing means
    • F25B2313/02741Compression machines, plants or systems with reversible cycle not otherwise provided for characterised by the reversing means using one four-way valve
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25BREFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
    • F25B2400/00General features or devices for refrigeration machines, plants or systems, combined heating and refrigeration systems or heat-pump systems, i.e. not limited to a particular subgroup of F25B
    • F25B2400/07Details of compressors or related parts
    • F25B2400/075Details of compressors or related parts with parallel compressors
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25BREFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
    • F25B2400/00General features or devices for refrigeration machines, plants or systems, combined heating and refrigeration systems or heat-pump systems, i.e. not limited to a particular subgroup of F25B
    • F25B2400/13Economisers
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25BREFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
    • F25B2600/00Control issues
    • F25B2600/25Control of valves
    • F25B2600/2509Economiser valves
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F25REFRIGERATION OR COOLING; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS; MANUFACTURE OR STORAGE OF ICE; LIQUEFACTION SOLIDIFICATION OF GASES
    • F25BREFRIGERATION MACHINES, PLANTS OR SYSTEMS; COMBINED HEATING AND REFRIGERATION SYSTEMS; HEAT PUMP SYSTEMS
    • F25B2700/00Sensing or detecting of parameters; Sensors therefor
    • F25B2700/21Temperatures
    • F25B2700/2101Temperatures in a bypass

Definitions

  • the present disclosure relates to an air conditioner, and more particularly, to an air conditioner that is configured to increase an amount of refrigerant that is compressed by a compressor in a heating mode.
  • an air conditioner is an appliance that cools or heats indoor air by heat-exchange of refrigerant with the indoor air using a refrigeration cycle for compressing, condensing, expanding, and vaporizing the refrigerant.
  • the air conditioners are classified into cooling air conditioners that supply cool air to an indoor space by operating the refrigeration cycle in only one direction and heating-and-cooling air conditioners that can supply cool or hot air by selectively operating the refrigeration cycle in one of both directions.
  • the heating-and-cooling air conditioner heats an indoor space when the refrigerant compressed by a compressor flows into an indoor heat exchanger provided in an indoor unit and is condensed by heat-exchanging with indoor air.
  • the condensed refrigerant expands at an expansion valve and is vaporized by heat-exchanging with outdoor air at an outdoor heat exchanger provided in an outdoor unit.
  • the vaporized refrigerant flows into the compressor and is compressed by the compressor.
  • the compressed refrigerant flows toward the indoor heat exchanger, thereby continuously realizing a heating cycle.
  • a refrigeration system includes a refrigerant circuit and a microprocessor circuit.
  • a first fluid path is defined by a compressor, a discharge line, a condenser, an economizer input line, an economizer, a first economizer output line, a main electronic expansion valve, an evaporator input line, an evaporator, and a suction line.
  • the economizer input line includes a first branch and a second branch. The first branch defines part of the first fluid path, while the second branch defines part of a second fluid path.
  • the second fluid path passes through the compressor, the discharge line, the condenser, the economizer input line, a secondary electronic expansion valve, an economizer chamber, and a second economizer output line.
  • the refrigerant passing into the economizer chamber via the second branch is in a heat transfer relationship with the refrigerant passing through the economizer via the first branch.
  • the economizer chamber is fluidly coupled to the compressor by the second economizer output line.
  • a plurality of sensors includes a compressor discharge temperature sensor, a suction temperature sensor, an evaporator input temperature sensor, and an evaporator output temperature sensor. Each one of the plurality of sensors is electrically coupled to an input of the microprocessor.
  • the main and secondary electronic expansion valves are each coupled to an output of the microprocessor.
  • the microprocessor reads the economizer temperature sensor to determine whether this temperature is greater than a saturated temperature value. If the economizer temperature is greater than a saturated temperature value, the refrigerant being delivered from the economizer to the compressor is superheated. Accordingly, the microprocessor sends a signal to the secondary electronic expansion valve to increase the flow of refrigerant through the secondary electronic expansion valve.
  • the microprocessor further reads the compressor discharge temperature sensor. If the microprocessor determines that the compressor discharge temperature is greater than a threshold temperature, it sends a signal to the secondary electronic expansion valve to increase the flow of refrigerant through the secondary electronic expansion valve.
  • JP 9210480 A describes a two-stage compression type refrigerating apparatus.
  • a capillary tube is set to the resistance so as to secure the minimum liquid refrigerant flow rate required in an intercooler and required to keep the degree of superheat of the higher stage side sucked gas to an appropriate value.
  • a liquid injection valve controls the temperature of the higher stage side discharged gas, and a temperature sensing cylinder is installed on a higher stage side discharge pipe. When the temperature of the higher stage side discharged gas is below the allowable value, the liquid injection valve is closed.
  • the liquid injection valve When the temperature of the higher stage side discharged gas is not less than the allowable value, the liquid injection valve is operated, and controls the opening to increase the flow rate of the refrigerant flowing into the intercooler to drop the temperature of the higher stage side discharged gas below the allowable value.
  • JP 2007 255 864 A describes a further two-stage compression type refrigerating apparatus.
  • a two-stage compression type refrigerating device comprising a two-stage compressor and an intermediate cooler in a refrigerant circuit, and cooling a high stage-side sucked gas of the two-stage compressor by the refrigerant of intermediate pressure from the intermediate cooler, comprises a branch pipe connecting a condenser and the intermediate cooler, an electronic expansion valve disposed on the branch pipe, and a controller controlling the electronic expansion valve on the basis of the degree of superheat of a high stage-side discharged gas of the two-stage compressor.
  • a refrigeration system includes a reciprocating compressor having a first stage and a second stage with the first stage having four cylinders and the second stage having two cylinders.
  • Compressor is in a circuit serially including first stage, second stage, condenser, thermal expansion valve, and an evaporator.
  • a line contains a modulating valve and is connected between the suction and discharge sides of the first stage. The modulating valve operates in response to the temperature sensed by temperature sensor which is in the zone being cooled.
  • An economizer line extends between a point intermediate condenser and thermal expansion valve and a point intermediate first stage and second stage but downstream of the intersection with line.
  • a further valve is located in economizer line and is operated responsive to temperature sensor which is located at the outlet of second stage.
  • the thermal expansion valve is responsive to temperature sensor which is located at the outlet of the evaporator.
  • US 2009/0044550 A1 describes an air conditioner.
  • an opening degree of a bypass expansion valve is adjusted such that a superheat degree of a refrigerant at an outlet on the bypass refrigerant circuit side of a subcooler becomes a target superheat degree.
  • the superheat degree of the refrigerant at the outlet on the bypass refrigerant circuit side of the subcooler is detected by converting a suction pressure of the compressor detected by the suction pressure sensor to saturated temperature corresponding to an evaporation temperature, and subtracting this saturated temperature of the refrigerant from the refrigerant temperature detected by the bypass temperature sensor.
  • a temperature sensor may be disposed at an inlet on the bypass refrigerant circuit side of the subcooler such that the superheat degree of the refrigerant at the outlet on the bypass refrigerant circuit side of the subcooler is detected by subtracting the refrigerant temperature detected by this temperature sensor from the refrigerant temperature detected by the bypass temperature sensor.
  • the bypass expansion valve is closed.
  • JP 2000234811 A describes a refrigerating cycle device.
  • a carbon dioxide refrigerant, compressed in a compressor, is provided with high-temperature and high-pressure state and, thereafter, is introduced into a heat radiator.
  • the heat of the refrigerant is dissipated under a condition that is not provided with gas/liquid two-phase condition and the pressure of the same is reduced in a pressure reducer so as to be provided with the gas/liquid two-phase condition, then, is introduced into a heat absorber.
  • the refrigerant is sucked into the compressor again from the heat absorber.
  • EP 0778451 A2 describes a motor cooling in a refrigeration system.
  • a refrigeration or air conditioning system has a motor cooling controlled by a microprocessor.
  • a motor-compressor includes a motor and a compressor.
  • the compressor receives gaseous refrigerant via a suction line and discharges hot, high pressure gas via a line and an oil separator to condenser.
  • the output of the condenser is supplied via a line to a heat exchanger economizer and passes through an expansion valve and low pressure refrigerant is supplied via a line to an evaporator which is connected to a motor-compressor via suction line.
  • the degree of opening of an expansion valve is under the control of the microprocessor responsive to the temperature sensed by a thermistor.
  • An object of the present disclosure relates to an air conditioner that can improve heating capability by increasing an amount of refrigerant compressed by a compressor.
  • Another object of the present disclosure relates to an air conditioner that can highly maintain a heating increase rate even in a very low outdoor temperature environment.
  • an air conditioner including a compressor, a first heat exchanger, and a first pipe configured to allow refrigerant to flow from the first heat exchanger.
  • a bypass pipe is branched off from the first pipe and is configured to expand refrigerant flowing through the bypass pipe.
  • a second heat exchanger is configured to allow the expanded refrigerant of the bypass pipe to heat-exchange with the refrigerant flowing along the first pipe.
  • a second pipe couples the second heat exchanger to the compressor so that the refrigerant expanded by the bypass pipe and heat-exchanged at the second heat exchanger can be introduced into the compressor.
  • a control method of an air conditioner including measuring a degree of discharge superheat of a compressor, expanding a portion of refrigerant that is branched off from refrigerant that flows from an indoor heat exchanger into an outdoor heat exchanger, heat-exchanging the expanded portion of the refrigerant with the refrigerant that flows towards the outdoor heat exchanger, and introducing the heat-exchanged portion of the refrigerant into the compressor, when a degree of discharge superheat is above a first predetermined value.
  • FIG. 1 is a schematic view of an air conditioner in a heating mode according to an embodiment of the present invention
  • FIG. 2 is a schematic diagram of the air conditioner of FIG. 1 , illustrating flow of refrigerant in the heating mode.
  • An embodiment of the present invention will be described hereinafter with reference to FIGS. 1 and 2 .
  • An air conditioner includes an outdoor unit 100 and an indoor unit 200. Although one outdoor unit 100 and one indoor unit 200 are illustrated in the drawings, this should not be construed as a limitation. That is, the air conditioner may include a plurality of outdoor units 100 and/or a plurality of indoor units 200. When a plurality of outdoor units 100 are provided and interconnected, a high/low pressure common pipe 115 may be further provided to equalize the high pressure or low pressure refrigerant between the outdoor units 100.
  • the outdoor unit 100 includes a compressor 120, an outdoor heat exchanger 130, and an internal heat exchanger 182. Although three compressors 120 are illustrated in this embodiment, this should not be construed as a limitation. The number of compressors may vary depending on an air conditioning load and compression capacity of the air conditioner.
  • the compressor 120 includes an intake port 122 through which the refrigerant vaporized by the outdoor heat exchanger 130 flows into the compressor 120, a discharge port 124 through which the compressed refrigerant is discharged, and an injection port 126 through which the refrigerant that is in an intermediate pressure state is injected from the internal heat exchanger 182 side.
  • the compressor 120 compresses low temperature/low pressure refrigerant into high temperature/high pressure refrigerant.
  • the compressor 120 may be variously structured. For example, an inverter type compressor or a constant speed compressor may be used as the compressor 120.
  • An accumulator 162 may be provided to prevent the liquid-phase refrigerant from flowing into the compressor 120.
  • a temperature sensor 131 for measuring a temperature of the refrigerant discharged by the compressor 120 and a pressure switch 133 for adjusting discharge pressure of the refrigerant are provided.
  • Oil contained in the refrigerant discharged by the compressor 120 is separated from the refrigerant by an oil separator 140 and the separated oil flows along the oil recovery pipe 141 and is mixed with the gas-phase refrigerant separated from the accumulator 162, after which the oil flows into the compressor 120.
  • a capillary tube 137 may be provided in the oil recovery pipe 141.
  • a four-way valve 172 that is a directional control valve functions to guide the refrigerant compressed in the compressor 120 to the outdoor heat exchanger 130 in a cooling mode and to the indoor heat exchanger 220 in a heating mode.
  • the outdoor heat exchanger 130 is generally disposed outdoor.
  • the refrigerant heat-exchanges with the outdoor air while passing through the outdoor heat exchanger 130.
  • the outdoor heat exchanger 130 functions as a condenser in the cooling mode and as a vaporizer in the heating mode.
  • the outdoor expansion valve 171 expands the refrigerant directed toward the outdoor heat exchanger 130 in the heating mode.
  • a blower fan 178 may be provided to discharge heat generated by the heat-exchange between the outdoor air and the refrigerant flowing along the outdoor heat exchanger 178 external to the outdoor unit 100.
  • the refrigerant condensed by the indoor heat exchanger 220 flows into the internal heat exchanger 182 through a liquid pipe 112.
  • some of the refrigerant flowing along the liquid pipe 112 is directed to the bypass pipe 181 and expands while passing through an internal expansion valve 184 provided on the bypass pipe 181, after which the expanded refrigerant flows into the internal heat exchanger 182.
  • heat exchange between the refrigerant from the liquid pipe 112 and the refrigerant from the bypass pipe 181 is realized at the internal heat exchanger 182.
  • the refrigerant flowing from the liquid pipe 112 to the internal heat exchanger 182 has the higher temperature than the refrigerant flowing toward the bypass pipe 181 and expanded by the internal expansion valve 184.
  • the expanded refrigerant absorbs the heat to be vaporized.
  • the vaporized refrigerant is transferred to the compressor 120 through a first refrigerant pipe 111.
  • a first temperature sensor 185 for measuring a temperature of the refrigerant injected toward the compressor 120 is provided.
  • the first temperature sensor 185 may be provided on the first refrigerant pipe 111.
  • a linear expansion valve may be used as the internal expansion valve 184 considering convenience in use and control.
  • a first refrigerant adjusting valve 154 for controlling the refrigerant injected to the compressor 120 through the first refrigerant pipe 111 may be provided.
  • the first refrigerant control valve 154 is controlled to be opened when degree of discharge superheat of the compressor is above a first predetermined value.
  • the degree of superheat means a difference between a temperature of vaporized gas superheated above a saturated temperature and a saturated temperature corresponding to the pressure.
  • the degree of discharge superheat of the compressor means a degree of superheat of the refrigerant discharged through a discharge port 124 of the compressor 120.
  • the degree of discharge superheat may be measured in various ways. For example, it is possible to measure the degree of discharge superheat of the compressor 120 by detecting the discharge pressure and temperature of the compressor 120, which can be easily measured, and using a pressure-temperature curve corresponding to the detected discharge pressure and temperature. It is also possible to measure the degree of discharge superheat of the compressor by measuring a discharge temperature of the compressor 120 and a temperature of the refrigerant vaporized in the outdoor heat exchanger 130.
  • the first predetermined value is a value for stable operation of the compressor 120.
  • the degree of discharge superheat of the compressor 120 is too low, the liquid-phase refrigerant may flow into the compressor 120. This may be hard on the compressor 120 and may cause noise to be generated.
  • the degree of discharge superheat of the compressor 120 is too high, the compressor 120 may be overheated and the efficiency of the compressor 120 may be deteriorated. Therefore, it is preferable that the first predetermined value is set considering these characteristics.
  • a second refrigerant pipe 113 may be further provided so that the refrigerant flowing into the internal heat exchanger 182 through the bypass pipe 181 and heat-exchanged at the internal heat exchanger 182 can be transferred to the accumulator 162 in the cooling mode.
  • a second refrigerant adjusting valve 156 may be provided on the second refrigerant pipe 113. The second refrigerant adjusting valve 156 may be controlled to be closed in the heating mode.
  • the refrigerant flowing from the liquid pipe 112 to the internal heat exchanger 182 heat-exchanges with the refrigerant flowing along the bypass pipe 181, after which the refrigerant is discharged toward the outdoor heat exchanger 130.
  • the refrigerant discharged toward the outdoor heat exchanger 130 expands while passing through the refrigerant expansion valve 171 before flowing into the outdoor heat exchanger 130.
  • the refrigerant expanded by the refrigerant expansion valve 171 heat-exchanges while passing through the outdoor heat exchanger 130. At this point, it is preferable that the refrigerant is completely vaporized in the outdoor heat exchanger 130. However, the refrigerant may not be completely vaporized in the outdoor heat exchanger 130 due to a variety of conditions such as a temperature of outdoor air, pressure of the refrigerant, and temperature of the refrigerant. As a result, the refrigerant may exist in a state where liquid-phase refrigerant and gas-phase refrigerant are mixed with each other.
  • the mixed refrigerant (the liquid-phase refrigerant and the gas-phase refrigerant) is separated into the gas-phase refrigerant and the liquid-phase refrigerant in the accumulator 162. At this point, the gas-phase refrigerant is returned to the compressor 120.
  • the refrigerant injected through the first refrigerant pipe 111 and the refrigerant from the accumulator 162 are compressed together in the compressor 120. Therefore, a sufficient amount of the refrigerant being compressed can be attained and thus there is an effect that the heat efficiency can be improved.
  • the refrigerant when a temperature of the outdoor air is low, the refrigerant may not be sufficiently vaporized in the outdoor heat exchanger 130 and thus both the gas-phase refrigerant and the liquid-phase refrigerant may be mixed and flow into the accumulator 162.
  • the gas-phase refrigerant is separated in the accumulator 162 and flows into the compressor 120. Therefore, there was a problem that an amount of the gas-phase refrigerant flowing into the compressor 120 is reduced.
  • a sufficient amount of the refrigerant flowing into the compressor 120 can be attained even when the temperature of the outdoor air is low.
  • the air conditioner may further include a first temperature sensor 185 for measuring a temperature of refrigerant flowing along the first refrigerant pipe 111 and a second temperature sensor 183 for measuring the refrigerant flowing into the internal heat exchanger 182 through the bypass pipe 181.
  • the second temperature sensor 183 may be provided between the internal heat exchanger 182 and the internal expansion valve 184.
  • the degree of superheat (hereinafter, referred to as "degree of injection superheat") of the refrigerant injected into the compressor 120 can be represented by a difference between a temperature measured by the first temperature sensor 185 and a temperature measured by the second temperature sensor 183.
  • An opening of the internal expansion valve 184 is adjusted such that the degree of injection superheat reaches a second predetermined value.
  • the second predetermined value is set such that the degree of injection superheat can be sufficiently attained.
  • the second predetermined value may be properly set considering the temperature of the outdoor air, performance of the compressor, endurance of the compressor and set value of the indoor temperature.
  • the second predetermined value may be set to keep the degree of discharge superheat of the compressor 120 above the first predetermined value.
  • the degree of discharge superheat of the compressor 120 may be lowered by a variety of conditions such as variation of outdoor temperature, the outdoor heat exchanger 130 in a low temperature environment, and freezing caused by the heat exchange in the outdoor heat exchanger 130 and internal heat exchanger 182.
  • the second predetermined value can be properly set to keep the degree of discharge superheat of the compressor above the first predetermined value, thereby improving the heat performance and attaining the stability of the system.
  • the second predetermined value may be set considering the temperature of the outdoor air.
  • the second temperature should be set high.
  • the indoor unit 200 may include an indoor expansion valve 210, an indoor heat exchanger 220, and an indoor blower fan 230 directing the heat-exchanged air toward the indoor space.
  • the indoor expansion valve 210 is a device for expanding the refrigerant in the cooling mode. Although there is a variety of types of expansion valves, a linear expansion valve may be used as the indoor expansion valve 210 considering convenience in use and control. An opening of the indoor expansion valve 210 may be differently adjusted depending on whether it is in a cooling mode and in a heating mode.
  • FIG. 3 is a schematic diagram of an air conditioner in a cooling mode according to an embodiment of the present invention
  • FIG. 4 is a schematic diagram of the air conditioner of FIG. 3 , illustrating flow of refrigerant in the cooling mode. The flow of the refrigerant in the cooling mode will be described hereinafter with reference to FIGS. 3 and 4 .
  • the high temperature/high pressure gas-phase refrigerant discharged from the compressor 120 flows into the outdoor heat exchanger 130 via the four-way valve 172.
  • the refrigerant is condensed by heat-exchanging with the outdoor air.
  • the refrigerant passing through the outdoor heat exchanger 130 does not flow into the refrigerant expansion valve 171 but is input to the internal heat exchanger 171 by detouring around the refrigerant expansion valve 171 through the refrigerant pipe 179.
  • the refrigerant introduced into the internal heat exchanger 182 heat-exchanges and is then discharged to the liquid pipe 112.
  • the refrigerant that is input from the bypass pipe 181 to the internal heat exchanger 182 and heat-exchanged is transferred to the accumulator 162 through the second refrigerant pipe 113.
  • the liquid-phase refrigerant is removed from the refrigerant in the accumulator 162 and the refrigerant from which the liquid-phase refrigerant is removed is introduced into the compressor 120.
  • the second refrigerant adjusting valve 156 may be provided on the second refrigerant pipe 113 and controlled to be opened in the cooling mode.
  • the first refrigerant adjusting valve 154 provided on the first refrigerant adjusting valve 154 may be closed.
  • a check valve 132 for preventing the refrigerant from flowing toward the compressor 120 may be provided on the first refrigerant pipe 111.
  • the refrigerant flowing from the internal heat exchanger 182 to the liquid pipe 112 flows into the indoor unit 200 and is expanded by the indoor expansion valve 210, after which the refrigerant heat-exchanges at the indoor heat exchanger 220 and is then introduced into the compressor via the gas pipe 114, four-way valve 172, and accumulator 162 to continuously realize the cooling cycle.
  • FIG. 5 is a P-h diagram illustrating variation in an enthalpy and pressure of refrigerant circulating in an air conditioner according to an embodiment of the present invention.
  • the refrigerant flowing into the compressor 120 through the intake port 122 is compressed while varying in a phase thereof along "a-b" in the P-h diagram.
  • the gas-phase refrigerant that heat-exchanged in the internal heat exchanger 182 is further injected into the compressor 120 through the injection port 126.
  • the refrigerant flowing into the compressor 120 through the intake port 122 and the refrigerant injected through the injection port 126 are compressed together in the compressor 120.
  • This process can be represented as a phase variation process along "c-d" in the P-h diagram.
  • the refrigerant compressed by the compressor 120 and discharged from the compressor 120 flows into the indoor unit 200 and is condensed by heat-exchanging in the indoor heat exchanger 220. At this point, the phase of the refrigerant varies along "d-e" in the P-h diagram.
  • This process can be represented as a phase variation process along "e-f" in the P-h diagram.
  • the refrigerant output from the internal heat exchanger 182 to the outdoor heat exchanger 130 expands while passing through the refrigerant expansion valve 171.
  • This process can be represented as a phase variation process along "f-g" in the P-h diagram.
  • the refrigerant expanded by the refrigerant expansion valve 171 is input to the outdoor heat exchanger 130 and vaporized by heat-exchanging with the outdoor air.
  • This process can be represented as a phase variation process along "g-a" in the P-h diagram.
  • the refrigerant expanded by the internal expansion valve 184 is input again to the internal heat exchanger 182, after which the refrigerant is vaporized while heat-exchanging with the refrigerant input from the liquid pipe 112 to the internal heat exchanger 182.
  • This process can be represented as a phase variation process along "h-c" in the P-h diagram.
  • the refrigerant vaporized by heat-exchanging in the internal heat exchanger 182 is additionally injected into the compressor 120 and compressed by the compressor 120, much more refrigerant is compressed and thus the heating energy increases.
  • a whole amount of energy (an amount proportional to an area defined by "a-b-c-d-e-f-g-a" in the P-h diagram) used for general heating increases by a process ("e-f" in the P-h diagram) where the refrigerant flowing from the liquid pipe 112 to the internal heat exchanger 182 is condensed while heat-exchanging with the refrigerant input to the internal heat exchanger 182 through the bypass pipe 181.
  • a pressure adjusting unit may be provided near the discharge port 124 of the compressor 120.
  • a pressure switch 133 may be provided on the front end of the discharge port 124 of the compressor as the pressure adjusting unit.
  • a pressure switch (not shown) may be provided on the first refrigerant pipe 111 to adjust the pressure Pm of the refrigerant injected to the compressor 120 through the injection port 126.
  • An additional pressure switch (now shown) may be provided to adjust the pressure of the refrigerant flowing into the compressor 120 through the intake port 122.
  • the opening of the internal expansion valve 184 it is also possible to adjust the opening of the internal expansion valve 184 to maintain the heat increasing rate (n) within a predetermined range. That is, by adjusting the opening of the internal expansion valve 184, the degree of superheat of the refrigerant injected into the compressor 120 through the injection port 126 can be controlled and thus the heating increase rate (n) determined by the pressures Pd, Ps, and Pm that vary in response to the degree of superheat of the refrigerant.
  • FIG. 6 is a flowchart illustrating an exemplary control method of an air conditioner according to an embodiment of the present invention, which may be performed by a controller.
  • the heating mode operation is performed (S10).
  • the degree of discharge superheat of the compressor 120 is measured (S20).
  • the predetermined time is a time for which the system can be stabilized. That is, when the degree of discharge superheat of the compressor 120 is too low, the refrigerant flowing into the compressor 120 may contain the liquid-phase refrigerant. This may cause operational noise to be generated. The operational noise may cause user complaint. On the other hand, when the degree of discharge superheat of the compressor 120 is too high, the compressor 120 may burn out. Therefore, the predetermined time may be set considering the above-described characteristics.
  • the first predetermined value may be set considering the above-described characteristics for the stability of the system.
  • the first refrigerant adjusting valve 154 When the degree of discharge superheat is above the first predetermined value, the first refrigerant adjusting valve 154 is opened to allow for a refrigerant passage from the internal heat exchanger 182 to the compressor 120 (S40). At this point, some of the refrigerant input from the indoor heat exchanger 220 to the internal heat exchanger 182 along the liquid pipe 112 is branched off to the bypass pipe 181 and expands while passing through the internal expansion valve 184.
  • the expanded refrigerant heat-exchanges with the rest of the refrigerant input to the internal heat exchanger 182 along the liquid pipe 112. At this point, the refrigerant vaporized by the heat exchange is injected into the compressor 120 through the injection port 126 along the first refrigerant pipe 111.
  • the first and second temperature sensors 185 and 183 measure a first temperature T1 injected to the compressor 120 and a temperature T2 expanded by the internal expansion valve 184 and input to the internal heat exchanger 182 to measure the degree of injection superheat, respectively (S50).
  • the opening of the internal expansion valve 184 is adjusted in accordance with the degree of discharge superheat and/or degree of injection superheat of the compressor 120 (S60). Next, the degree of injection superheat is compared with a second predetermined value (S70). When the degree of injection superheat is lower than the second predetermined value, the opening of the internal expansion valve 184 is adjusted again to make the degree of injection superheat higher than the second predetermined value.
  • a condensing temperature (T3) of the refrigerant flowing into the compressor 120 is measured (S80).
  • the condensing temperature may be a temperature for condensing the refrigerant in the indoor heat exchanger 220.
  • the temperatures (T1 and T2) are measured again (S50) to continuously control the degree of injection superheat.
  • the condensing temperature (T3) is a reference temperature by which it is determined if the system is stabilized to a state where no refrigerant injection is required any more. Therefore, the condensing temperature (T3) may be set based on a condensing temperature in the internal heat exchanger 182.
  • the second predetermined value is a value affecting on the degree of discharge superheat of the compressor.
  • the second predetermined value may be set to maintain the degree of discharge superheat of the compressor above the first predetermined value.
  • the degree of injection superheat is above the second predetermined value by adjusting the opening of the internal expansion valve 184, the degree of discharge superheat will be also above the first predetermined value consequently.
  • the pressure of the refrigerant discharged by the compressor 120 may be adjusted such that the heating increase rate (n) that is a ratio between a difference between the pressure Pd of the refrigerant discharged by the compressor 120 and the pressure Ps of the refrigerant introduced into the compressor and a difference between the pressure Pd of the refrigerant discharged by the compressor 120 and the pressure Ps of the refrigerant injected to the compressor 120 can be within a predetermined range.
  • the pressure of the refrigerant discharged by the compressor 120 can be adjusted by the pressure switch 133.
  • the heating increase rate (n) may be controlled by adjusting the opening of the internal expansion valve 184. That is, the pressures Pd, Pm, and Ps that vary by adjustment of the opening of the internal expansion valve 184 are detected and the opening of the internal expansion valve 184 is corrected in accordance with the detected pressures Pd, Pm, and Ps, thereby controlling the heating increase rate (n) within the predetermined range.

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  • Engineering & Computer Science (AREA)
  • Physics & Mathematics (AREA)
  • Mechanical Engineering (AREA)
  • Thermal Sciences (AREA)
  • General Engineering & Computer Science (AREA)
  • Chemical & Material Sciences (AREA)
  • Analytical Chemistry (AREA)
  • Power Engineering (AREA)
  • Air Conditioning Control Device (AREA)
  • Compression-Type Refrigeration Machines With Reversible Cycles (AREA)

Claims (9)

  1. Klimaanlage, die umfasst:
    einen Kompressor (120);
    einen ersten Wärmeaustauscher (220);
    ein erstes Rohr (112), das konfiguriert ist, zu erlauben, dass Kühlmittel von dem ersten Wärmeaustauscher (220) fließt;
    ein Umleitungsrohr (181), das von dem ersten Rohr (112) abzweigt und an dem ein Expansionsventil (184) vorgesehen ist;
    einen zweiten Wärmeaustauscher (182), der konfiguriert ist, dem durch das Expansionsventil (184) expandierten Kühlmittel zu erlauben, mit dem Kühlmittel, das entlang des ersten Rohrs (112) fließt, Wärme auszutauschen;
    ein zweites Rohr (111), das den zweiten Wärmeaustauscher (182) an den Kompressor (120) koppelt, so dass das Kühlmittel, das durch das Expansionsventil (184) expandiert wurde und an dem zweiten Wärmeaustauscher (182) Wärme ausgetauscht hat, in den Kompressor (120) eingeführt werden kann,
    gekennzeichnet durch:
    ein Anpassungsventil (154), das an dem zweiten Rohr (111) vorgesehen ist und geöffnet wird, wenn ein Maß der Austrittsüberhitzungswärme des in den Kompressor (120) eingeführten expandierten Kühlmittels über einem ersten vorgegebenen Wert liegt;
    einen ersten Temperatursensor (185), der eine Temperatur des in den Kompressor (120) durch das zweite Rohr (111) eingeführten expandierten Kühlmittels misst; und
    einen zweiten Temperatursensor (183), der eine Temperatur des durch das Expansionsventil (184) expandierten und durch das Umleitungsrohr (181) in den zweiten Wärmeaustauscher (182) fließenden Kühlmittels misst,
    wobei eine Öffnung des Expansionsventils (184) so angepasst wird, dass ein Unterschiedswert zwischen der durch den ersten Temperatursensor (185) gemessen Temperatur und der durch den zweiten Temperatursensor (183) gemessenen Temperatur einen zweiten vorgegebenen Wert erreicht.
  2. Klimaanlage nach Anspruch 1, wobei der zweite vorgegebene Wert so eingestellt ist, das das Maß der Austrittsüberhitzungswärme den ersten vorgegebenen Wert beibehält oder größer als der erste vorgegebene Wert ist.
  3. Klimaanlage nach Anspruch 1, die ferner einen Druckschalter (133) umfasst, um einen Druck des von dem Kompressor (120) ausgestoßenen Kühlmittels anzupassen,
    wobei der Druckschalter (133) den Druck des durch den Kompressor (120) ausgestoßenen Kühlmittels abhängig von einer Wärmeanstiegsrate anpasst, die einem Verhältnis zwischen einem Unterschied zwischen dem Druck (Pd) des durch den Kompressor (120) ausgestoßenen Kühlmittels und dem Druck (Pm) des in den Kompressor (120) eingeführten Kühlmittels und einem Unterschied zwischen dem Druck (Pd) des durch den Kompressor (120) ausgestoßenen Kühlmittels und dem Druck (Ps) des in den Kompressor (120) eingeführten expandierten Kühlmittels entspricht.
  4. Klimaanlage nach Anspruch 1, wobei das Anpassungsventil (154) geschlossen wird, wenn eine Kondensationstemperatur (T3) des ersten Wärmeaustauschers (220) über einem dritten vorgegebenen Wert liegt.
  5. Steuerverfahren einer Klimaanlage, wobei das Verfahren umfasst:
    Messen eines Maßes einer Austrittsüberhitzungswärme eines Kompressors (120);
    Expandieren eines Teils des Kühlmittels, das von dem Kühlmittel abgezweigt wird, das von einem Innenwärmeaustauscher (220) in einen Außenwärmeaustauscher (130) fließt;
    Austauschen von Wärme des expandierten Teils des Kühlmittels mit dem Kühlmittel, das in Richtung des Außenwärmeaustauschers fließt;
    Einführen des Teils des Kühlmittels, der expandiert und Wärme ausgetauscht hat, in den Kompressor (120), wenn ein Maß einer Austrittsüberhitzungswärme über einem ersten vorgegebenen Wert liegt;
    Messen einer ersten Temperatur des Teils des in den Kompressor (120) eingeführten Kühlmittels, der expandiert und Wärme ausgetauscht hat;
    Messen einer zweiten Temperatur des expandierten Kühlmittels, das von dem Kühlmittel abgezweigt wird, das von einem Innenwärmeaustauscher (220) in den Außenwärmeaustauscher (130) fließt; und
    Anpassen eines Maßes des expandierten Kühlmittels so, dass ein Unterschiedswert zwischen der ersten und der zweiten Temperatur einen zweiten vorgegebenen Wert erreicht.
  6. Verfahren nach Anspruch 5, wobei der zweite vorgegebene Wert so eingestellt ist, dass das Maß der Austrittsüberhitzungswärme des Kompressors (120) über dem ersten vorgegebenen Wert liegt.
  7. Verfahren nach Anspruch 5, das ferner umfasst, einen Druck des durch den Kompressor (120) ausgestoßenen Kühlmittels abhängig von einer Wärmeanstiegsrate anzupassen, die einem Verhältnis zwischen einem Unterschied zwischen dem Druck (Pd) des durch den Kompressor (120) ausgestoßenen Kühlmittels und dem Druck (Pm) des in den Kompressor (120) eingeführten Kühlmittels und einem Unterschied zwischen dem Druck (Pd) des durch den Kompressor (120) ausgestoßenen Kühlmittels und dem Druck (Ps) des in den Kompressor eingeführten expandierten Kühlmittels entspricht.
  8. Verfahren nach Anspruch 5, wobei ein Maß des expandierten Teils des Kühlmittels abhängig von einer Wärmeanstiegsrate angepasst wird, die einem Verhältnis zwischen einem Unterschied zwischen dem Druck (Pd) des durch den Kompressor (120) ausgestoßenen Kühlmittels und dem Druck (Pm) des in den Kompressor (120) eingeführten Kühlmittels und einem Unterschied zwischen dem Druck (Pd) des durch den Kompressor (120) ausgestoßenen Kühlmittels und dem Druck (Ps) des in den Kompressor eingeführten expandierten Kühlmittels entspricht.
  9. Verfahren nach Anspruch 5, wobei eine Kondensationstemperatur (T3) des Innenwärmeaustauschers (120) über einem dritten vorgegebenen Wert liegt, wobei das Kühlmittel nicht mehr in den Kompressor eingeführt wird.
EP10001897.7A 2009-02-25 2010-02-24 Klimaanlage und Steuerverfahren dafür Not-in-force EP2224191B1 (de)

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EP2224191A2 (de) 2010-09-01
US8459051B2 (en) 2013-06-11
KR101552618B1 (ko) 2015-09-11
ES2619706T3 (es) 2017-06-26
EP2224191A3 (de) 2012-01-11
KR20100096858A (ko) 2010-09-02

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